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On the impact of the temporal variability of the collisional quenching process on the mesospheric OH emission layer: a study based on SD-WACCM4 and SABER

机译:关于碰撞淬火工艺的时间变异性对Mesompheric oh发射层的影响:基于SD-WACCM4和SABER的研究

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The mesospheric OH Meinel emissions are subject of many theoretical and observational studies devoted to this part of the atmosphere. Depending on the initial vibrational level of excitation the altitude of the considered OH Meinel emission is systematically shifted, which has important implications for the intercomparison of different studies considering different transition bands. Previous model studies suggest that these vertical shifts are essentially caused by the process of collisional quenching with atomic oxygen. Following this hypothesis, a recent study found experimental evidence of a coherent seasonality at tropical latitudes between vertical shifts of different OH Meinel bands and changes in atomic oxygen concentrations. Despite the consistent finding of the above mentioned hypothesis, it cannot be excluded that the actual temporal variability of the vertical shifts between different OH Meinel bands may in addition be controlled or even dominated by other processes. It remains an open question whether the observed temporal evolution is indeed mainly controlled by the modulation of the collisional quenching process with atomic oxygen. By means of a sensitivity study which employs a quenching model to simulations made with the SD-WACCM4 chemistry climate model, we aim at assessing this question. From this study we find that the observed seasonality of vertical OH Meinel shifts is only partially controlled by temporal changes in atomic oxygen concentrations, while molecular oxygen has another noticeable impact on the vertical OH Meinel shifts. This in particular becomes evident for the diurnal variability of vertical OH Meinel shifts, which reveal only a poor correlation with the atomic oxygen species. Furthermore, changes in the H + O3 source gases provide another mechanism that can potentially affect the diurnal variability in addition. By comparison with limb radiance observations from the SABER/TIMED satellite this provides an explanation for the less evident diurnal response between changes in O concentrations and vertical OH Meinel shifts. On the other hand, at seasonal timescales the coherency between both quantities is again evident in SABER/TIMED but less pronounced compared to our model simulations.
机译:Mesomperic oh Meinel排放是许多理论和观察研究的主题,致力于大气层的这一部分。根据初始振动的激发水平,所考虑的OH Meinel排放的高度被系统地转变,这对考虑不同的过渡带的不同研究的互相具有重要意义。以前的模型研究表明,这些垂直偏移基本上是由用原子氧的碰撞猝灭的过程引起的。在这一假设之后,最近的一项研究发现了不同欧姆布尔乐队垂直偏移与原子氧浓度的变化之间的热带突出的相干季节性的实验证据。尽管对上述假设一致的发现,但不能被排除在不同OH Meinel频带之间的垂直偏移的实际时间变化可以另外可以被其他过程控制或甚至主导。是否仍然是观察到的时间进化确实主要是通过用原子氧的碰撞猝灭过程的调节来控制的突出问题。通过使用淬火模型来模拟与SD-WACCM4化学气候模型进行的敏感性研究,我们旨在评估这个问题。从本研究开始,我们发现观察到的垂直OH Meinel换档的季节性仅部分地通过原子氧浓度的时间变化来控制,而分子氧对垂直哦Meinel偏移具有另一种显着的影响。这尤其对垂直哦Meinel偏移的昼夜变异性显而易见,其仅揭示与原子氧物种的不良相关性。此外,H + O3源气体的变化提供了另一种机制,其可以增加昼夜变异性。通过与SABER /定时卫星的肢体辐射观测比较,这提供了对O浓度和垂直恒定偏移变化之间的不太明显的昼夜响应提供了解释。另一方面,在季节性时间尺度,两种数量之间的一致性在Sabre /定时再次明显,但与我们的模型模拟相比,但与我们的模型仿真相比不太明显。

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